Bender M H, Yother J
Department of Microbiology, University of Alabama, Birmingham 35294, USA.
J Biol Chem. 2001 Dec 21;276(51):47966-74. doi: 10.1074/jbc.M105448200. Epub 2001 Oct 17.
Tyrosine phosphorylation is associated with polysaccharide synthesis in a number of Gram-positive and Gram-negative bacteria. In Streptococcus pneumoniae, CpsB, CpsC, and CpsD affect tyrosine phosphorylation and are critical for the production of a mature capsule in vitro. To characterize the interactions between these proteins and the phosphorylation event they modulate, cps2B, cps2C, and cps2D from the capsule type 2 S. pneumoniae D39 were cloned and expressed both individually and in combination in Escherichia coli. Cps2D purified from E. coli was not phosphorylated unless it was co-expressed with its cognate transmembrane domain, Cps2C. Purified phosphorylated Cps2D had tyrosine kinase activity and could phosphorylate both dephosphorylated Cps2D and an exogenous substrate (poly-Glu-Tyr) in the absence of ATP. Cps2B exhibited phosphatase activity against both purified phosphorylated Cps2D and p-nitrophenyl phosphate. An additional role for Cps2B as an inhibitor of Cps2D phosphorylation was demonstrated in both co-expression experiments in E. coli and in vitro experiments where it blocked the transphosphorylation of Cps2D even in the presence of the phosphatase inhibitor sodium orthovanadate. cps2C and cps2D deletion mutants in S. pneumoniae produced no detectable mature capsule during laboratory culture. Both were avirulent in systemic mouse infections and were unable to colonize the nasopharynx, suggesting that the failure to produce capsule was not dependent on the environment. Based on these results, we propose a model for capsule regulation where CpsB, CpsC, CpsD, and ATP form a stable complex that enhances capsule synthesis.
酪氨酸磷酸化与多种革兰氏阳性菌和革兰氏阴性菌中的多糖合成相关。在肺炎链球菌中,CpsB、CpsC和CpsD影响酪氨酸磷酸化,并且对于体外成熟荚膜的产生至关重要。为了表征这些蛋白质之间的相互作用以及它们所调节的磷酸化事件,从2型肺炎链球菌D39中克隆了cps2B、cps2C和cps2D,并分别或组合在大肠杆菌中进行表达。从大肠杆菌中纯化的Cps2D未被磷酸化,除非它与其同源跨膜结构域Cps2C共表达。纯化的磷酸化Cps2D具有酪氨酸激酶活性,并且在没有ATP的情况下能够使去磷酸化的Cps2D和外源底物(聚谷氨酸-酪氨酸)磷酸化。Cps2B对纯化的磷酸化Cps2D和对硝基苯磷酸均表现出磷酸酶活性。在大肠杆菌中的共表达实验和体外实验中均证明了Cps2B作为Cps2D磷酸化抑制剂的额外作用,在体外实验中,即使存在磷酸酶抑制剂原钒酸钠,它也能阻断Cps2D的转磷酸化。肺炎链球菌中的cps2C和cps2D缺失突变体在实验室培养期间未产生可检测到的成熟荚膜。两者在全身性小鼠感染中均无致病性,并且无法在鼻咽部定植,这表明未能产生荚膜不依赖于环境。基于这些结果,我们提出了一种荚膜调节模型,其中CpsB、CpsC、CpsD和ATP形成一个稳定的复合物,增强荚膜合成。